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使用扭曲堆叠纳米线阵列在带间跃迁和等离子体消光区域进行手性生物传感。

Chiral biosensing at both interband transition and plasmonic extinction regions using twisted-stacked nanowire arrays.

机构信息

CAS Key Laboratory of Soft Matter Chemistry, Department of Polymer Science and Engineering, University of Science and Technology of China, 96 Jinzhai Road, Hefei 230026, China.

Department of Chemistry, National University of Singapore, Singapore 117549, Singapore.

出版信息

Nanoscale. 2022 Jul 28;14(29):10524-10530. doi: 10.1039/d2nr03357g.

Abstract

Chiral metal nanostructures that exhibit strong chiroptical properties and enhanced light-matter interactions have recently attracted great interest due to their potential applications including chiral sensing and asymmetric synthesis. Most studies in this field focused on chiral sensing using circular dichroism (CD) responses at the plasmonic extinction region. In comparison, little is known about their CD responses at interband transition regions and their utility in chiral biosensing. Herein, we constructed a series of twisted-stacked silver nanowire arrays (TNAs) featuring CD signals at both the interband transition and plasmonic extinction regions and that are independently controllable. These TNAs are highly sensitive towards protein secondary structures. Proteins containing more β-sheets are more sensitive toward strong chiral plasmonic fields, whereas proteins rich in α-helices tend to generate larger CD shifts at the interband transition region of TNAs. The mutually independent optical activities at the interband transition and plasmonic extinction regions complement each other, providing more sensitivity and reliability in chiral biosensing.

摘要

手性金属纳米结构具有强手征光学性质和增强的光物质相互作用,由于其潜在的应用,包括手征传感和不对称合成,最近引起了极大的关注。该领域的大多数研究都集中在手征传感上,使用等离子体消光区域的圆二色性(CD)响应。相比之下,对于它们在能带跃迁区域的 CD 响应及其在手征生物传感中的应用知之甚少。在此,我们构建了一系列具有能带跃迁和等离子体消光区域的扭曲堆叠银纳米线阵列(TNA),并具有独立可控的 CD 信号。这些 TNA 对蛋白质二级结构高度敏感。含有更多 β-折叠的蛋白质对强手征等离子体场更敏感,而富含 α-螺旋的蛋白质在 TNA 的能带跃迁区域往往会产生更大的 CD 位移。能带跃迁和等离子体消光区域的相互独立的光学活性相互补充,在手征生物传感中提供更高的灵敏度和可靠性。

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